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Aliasghar Khani

3 accepted papers

2026

FunPhase: A Periodic Functional Autoencoder for Motion Generation via Phase Manifolds

ICML 2026poster

Learning natural body motion remains challenging due to the strong coupling between spatial geometry and temporal dynamics. Embedding motion in phase manifolds, latent spaces that capture local periodicity, has proven effective for motion prediction; however, existing approaches lack scalability and…

Cited by 1SourceScholar
2022

MaskTune: Mitigating Spurious Correlations by Forcing to Explore

NeurIPS 2022accept

A fundamental challenge of over-parameterized deep learning models is learning meaningful data representations that yield good performance on a downstream task without over-fitting spurious input features. This work proposes MaskTune, a masking strategy that prevents over-reliance on spurious (or a…